化学学报 ›› 2026, Vol. 84 ›› Issue (7): 1087-1095.DOI: 10.6023/A26030065 上一篇    下一篇

研究论文

SrCaLuScAl2Si2O12:Ce3+宽带绿色荧光粉的发光性能及其在白光发光二极管上的应用

张瀚月a, 王日升a, 杨昊a, 张玲玲a, 宋芳b, 冷稚华a,*()   

  1. a 西安建筑科技大学化学与化工学院 西安 710055
    b 西安建筑科技大学分析测试中心 西安 710055
  • 投稿日期:2026-03-03 发布日期:2026-04-27
  • 基金资助:
    国家自然科学基金(12404461); 陕西省自然科学基础研究计划(2024JC-YBMS-384); 陕西基础科学(化学、生物学)研究院基础科学研究计划(23JHQ077); 国家级大学生创新训练计划(202510703041)

Photoluminescence Properties of SrCaLuScAl2Si2O12:Ce3+ Broadband Green-Emitting Garnet Phosphor and Its Application in White Light-Emitting Diodes

Hanyue Zhanga, Risheng Wanga, Hao Yanga, Lingling Zhanga, Fang Songb, Zhihua Lenga,*()   

  1. a School of Chemistry and Chemical Engineering, Xi’an University of Architecture and Technology, Xi’an 710055
    b Instrument Analysis Center of Xi’an University of Architecture and Technology, Xi’an 710055
  • Received:2026-03-03 Published:2026-04-27
  • Contact: * E-mail: lengzh@xauat.edu.cn
  • Supported by:
    National Natural Science Foundation of China(12404461); Natural Science Basic Research Program of Shaanxi Province(2024JC-YBMS-384); Shaanxi Fundamental Science Research Project for Chemistry and Biology(23JHQ077); National Innovative Training Program for College Students(202510703041)

蓝光芯片和红、绿色荧光粉组装的白光发光二极管(WLED)能实现高色品质全光谱照明. 然而, 开发具有宽带绿光发射的荧光粉是实现高色品质全光谱照明的关键. 采用高温固相法成功合成了一种石榴石型SrCaLu1-xScAl2- Si2O12:xCe3+ (0.01≤x≤0.06, 下文简写成SCL:xCe3+)宽带绿色荧光粉. SCL:xCe3+绿色荧光粉最佳掺杂浓度为x=0.04, 且在450 nm附近的宽带吸收峰能与商用蓝光LED芯片高度匹配. 在450 nm激发下, SCL:0.04Ce3+荧光粉能发射出覆盖470~700 nm的宽带绿光, 其主峰位于530 nm. 与商用(Ba,Sr)2SiO4:Eu2+绿色荧光粉(半峰宽FWHM=71 nm)相比, SCL:0.04Ce3+绿色荧光粉的发射峰更宽(FWHM=105 nm). SCL:0.04Ce3+荧光粉中电子-声子耦合作用较弱, 使其具有较高的内/外量子效率(62.4%/23.0%)、良好的热稳定性(423 K时发光强度保持室温下的69%)和优异的色度稳定性(423 K时ΔC=2.1×10-3). 将SCL:0.04Ce3+绿色荧光粉与商用CaAlSiN3:Eu2+红色荧光粉共同涂覆于450 nm蓝光LED芯片上制备的WLED器件显色指数(Ra)高达93. 当驱动电流从20 mA逐步增加至300 mA时, 该器件能稳定地输出高色品质的暖白光. 上述结果表明SCL:0.04Ce3+宽带绿光荧光粉在高品质全光谱光照明领域具有潜在的应用前景.

关键词: SrCaLuScAl2Si2O12:Ce3+, 石榴石, 宽带绿色荧光粉, 白光发光二极管, 高显色指数

White light-emitting diodes (WLEDs) fabricated by combining blue chips with red and green phosphors enable high-color-quality full-spectrum lighting. However, the development of phosphors featuring broadband green emission is critical for achieving such high-quality full-spectrum illumination. In this study, a garnet-structured broadband green phosphor SrCaLu1-xScAl2Si2O12:xCe3+ (0.01≤x≤0.06, hereafter denoted as SCL:xCe3+) was successfully synthesized via a high-temperature solid-state reaction. The optimal doping concentration for SCL:xCe3+ was determined to be x=0.04, beyond which concentration quenching occurs due to non-radiative energy transfer between adjacent Ce3+ ions. The phosphor exhibits a broad excitation spectrum consisting of two distinct bands centered at approximately 350 and 450 nm, originating from the 4f→5d transitions of Ce3+ ions occupying the dodecahedral A sites (Sr2+/Ca2+/Lu3+ positions) in the garnet lattice. The main excitation peak at 450 nm is well matched with the emission of commercial blue LED chips. Upon 450 nm excitation, SCL:0.04Ce3+ emits broadband green light covering the spectral range of 470~700 nm with a dominant peak at 530 nm. The emission spectrum can be well deconvoluted into two Gaussian components centered at 526 and 581 nm, corresponding to 5d→2F5/2 and 5d→2F7/2 transitions of Ce3+, respectively. Notably, compared with the commercial (Ba,Sr)2SiO4: Eu2+ green phosphor (full width at half maximum, FWHM=71 nm), SCL:0.04Ce3+ exhibits a broader emission bandwidth (FWHM=105 nm). The weak electron-phonon coupling in SCL:0.04Ce3+ contributes to its high internal/external quantum efficiency (62.4%/23.0%), excellent thermal stability (retaining 69% of its room-temperature luminescence intensity at 423 K), and superior color stability (ΔC=2.1×10-3 at 423 K). A WLED device fabricated by coating SCL:0.04Ce3+ green phosphor together with commercial CaAlSiN3:Eu2+ red phosphor onto a 450 nm blue LED chip achieves a color rendering index (Ra) as high as 93, a correlated color temperature (CCT) of 4685 K, and a luminous efficacy of 124 lm/W under a driving current of 20 mA. As the driving current increases from 20 to 300 mA, the device delivers stable warm white light with high color quality, exhibiting a small CCT variation and negligible color coordinate shift. These results demonstrate that the SCL:0.04Ce3+ broadband green phosphor reported herein holds promising potential for high-quality full-spectrum lighting applications.

Key words: SrCaLuScAl2Si2O12:Ce3+, garnet, broadband green phosphor, white light-emitting diode, high color rendering index